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WebAssign for Brase/Brase/Dolor/Siebert’s Understanding Basic Statistics, Single Term Instant Access, 9th Edition

Charles Henry Brase, Corrinne Pellillo Brase, Jason Mark Dolor, James Allen Seibert

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Starting At £36.00 See pricing and ISBN options
WebAssign for Brase/Brase/Dolor/Siebert’s Understanding Basic Statistics, Single Term Instant Access 9th Edition by Charles Henry Brase/Corrinne Pellillo Brase/Jason Mark Dolor/James Allen Seibert

Overview

WebAssign for Brase/Brase/Dolor/Siebert’s Understanding Basic Statistics, 9th Edition, is a flexible and fully customizable online learning platform that puts powerful tools in the hands of instructors, enabling you to deploy assignments, instantly assess individual student and class performance and help your students master the course concepts. With its powerful digital platform and Understanding Basic Statistics specific content, you can tailor your course with a wide range of assignment settings, add your own questions and content and access student and course analytics and communication tools.

Charles Henry Brase

Charles Brase has more than 30 years of full-time teaching experience in mathematics and statistics. He taught at the University of Hawaii, Manoa Campus, for several years and at Regis University in Denver, Colorado, for more than 28 years. Dr. Brase received the Excellence in Teaching award from the University of Hawaii and the Faculty Member of the Year award from Regis University on two occasions. He earned degrees from the University of Colorado, Boulder, and he holds a Ph.D. and an M.A. in mathematics and a B.A. in physics.

Corrinne Pellillo Brase

Corrinne Pellillo Brase has taught at Hawaii Pacific College; Honolulu Community College; and Arapahoe Community College in Littleton, Colorado. She was also involved in the mathematics component of an equal opportunity program at the University of Colorado. Professor Brase received the Faculty of the Year award from Arapahoe Community College. She earned her degrees from the University of Colorado, Boulder, and she holds an M.A. and a B.A. in mathematics.

Jason Mark Dolor

Jason Dolor has more than 16 years of teaching experience in mathematics and statistics. He taught briefly at the University of Guam and has been serving as a teacher and researcher at Portland State University and the University of Portland for the last 15 years. Dr. Dolor regularly publishes his work in research journals. He also presents his work in statistical thinking, teacher knowledge, educational technology, curriculum development and assessment at various education conferences. Dr. Dolor earned his B.S. in computer science from the University of Portland, a graduate certificate in applied statistics, an M.S. in mathematics and a Ph.D. in mathematics education from Portland State University.

James Allen Seibert

James Seibert has more than 20 years of full-time teaching experience in mathematics and statistics. He taught briefly at Colorado State University and Willamette University, and currently teaches at Regis University in Denver, Colorado, where he has been a professor for the last 21 years. Dr. Seibert was mentored at Regis by Dr. Charles Brase, and remained life-long friends with Dr. and Ms. Brase. Dr. Seibert earned his B.A. in mathematics with minors in physics and philosophy from Linfield College and his M.A. and Ph.D. in mathematics from Colorado State University.
  • Teach Your Way: Customize your course based on your unique teaching style and the needs of your students with customizable questions, the ability to create your own questions and flexible assignment settings including the ability to grant extra time, give bonus points and more.
  • Quality Content: Help your students think statistically with unique WebAssign question types for Statistics—including prebuilt labs, videos, Project Milestones, SALT Questions, Concept Questions and more. All content is created in alignment with the author and text approach for consistency.
  • Accurate Grading: Be confident that your students answers are being graded corrected with WebAssign's patented grading engine powered by Mathematica that accepts a variety of equivalent answers so your students are not penalized for using a different answer format.
  • LMS Integrations: WebAssign integrates with popular platforms including Blackboard, Canvas, Moodle and Brightspace by D2L for ease of use. Save time and integrate WebAssign with your Learning Management System, with the help from your Cengage Representative.
  • Secure Testing: Concerned about academic integrity? WebAssign enables you to password-protect assignments, set a time limit for completion, restrict access to certain IP addresses and even prevent students from accessing other applications on their computer while taking the test with the LockDown Browser.
  • Timely Student Help: Promote independent learning with a wide range of help tools at the question or assignment level--such as Watch It videos, Master It tutorials and Read It links to the eTextbook--and feedback when students need it, to help them learn the concepts.
1. GETTING STARTED.
What Is Statistics? Random Samples. Introduction to Experimental Design.
2. ORGANIZING DATA.
Frequency Distributions, Histograms, and Related Topics. Bar Graphs, Circle Graphs, and Time-Series Graphs. Stem-and-Leaf Displays.
3. AVERAGES AND VARIATION.
Measures of Central Tendency: Mode, Median, and Mean. Measures of Variation. Percentiles and Box-and-Whisker Plots.
4. CORRELATION AND REGRESSION.
Scatter Diagrams and Linear Correlation. Linear Regression and the Coefficient of Determination.
5. ELEMENTARY PROBABILITY THEORY.
What Is Probability? Some Probability Rules-Compound Events. Trees and Counting Techniques.
6. THE BINOMIAL DISTRIBUTION AND RELATED TOPICS.
Introduction to Random Variables and Probability Distributions. Binomial Probabilities. Additional Properties of the Binomial Distribution.
7. NORMAL CURVES AND SAMPLING DISTRIBUTIONS.
Part I: Graphs of Normal Probability Distributions. Standard Units and Areas under the Standard Normal Distribution. Areas Under Any Normal Curve. Part II: Sampling Distributions. The Central Limit Theorem. Normal Approximation to Binomial Distribution and to p ̂Distribution.
8. ESTIMATION.
Estimating µ When σ Is Known. Estimating µ When σ Is Unknown. Estimating p in the Binomial Distribution.
9. HYPOTHESIS TESTING.
Introduction to Statistical Tests. Testing the Mean µ. Testing a Proportion p.
10. INFERENCES ABOUT DIFFERENCES.
Tests Involving Paired Differences (Dependent Samples). Inferences about the Difference of Two Means µ1 − µ2. Inferences about the Difference of Two Proportions p1 − p2.
11. ADDITIONAL TOPICS USING INFERENCE.
Part I: Inferences Using the Chi-Square Distribution.
Overview of the Chi-Square Distribution. Chi-Square: Tests of Independence and of Homogeneity. Chi-Square: Goodness of Fit. Testing a Single Variance or Standard Deviation.
Part II: Inferences Relating to Linear Regression.
Inferences for Correlation and Regression.
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  • ISBN-10: 0357757424
  • ISBN-13: 9780357757420
  • RETAIL £36.00